EP3090806B1 - Appareil de traitement d'eau par flotation à l'air dissous utilisant des injecteurs - Google Patents
Appareil de traitement d'eau par flotation à l'air dissous utilisant des injecteurs Download PDFInfo
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- EP3090806B1 EP3090806B1 EP16155269.0A EP16155269A EP3090806B1 EP 3090806 B1 EP3090806 B1 EP 3090806B1 EP 16155269 A EP16155269 A EP 16155269A EP 3090806 B1 EP3090806 B1 EP 3090806B1
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- water
- treatment apparatus
- micro bubbles
- zone
- basin
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/24—Treatment of water, waste water, or sewage by flotation
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D21/00—Separation of suspended solid particles from liquids by sedimentation
- B01D21/0084—Enhancing liquid-particle separation using the flotation principle
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D21/00—Separation of suspended solid particles from liquids by sedimentation
- B01D21/01—Separation of suspended solid particles from liquids by sedimentation using flocculating agents
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B03—SEPARATION OF SOLID MATERIALS USING LIQUIDS OR USING PNEUMATIC TABLES OR JIGS; MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03D—FLOTATION; DIFFERENTIAL SEDIMENTATION
- B03D1/00—Flotation
- B03D1/14—Flotation machines
- B03D1/1431—Dissolved air flotation machines
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/52—Treatment of water, waste water, or sewage by flocculation or precipitation of suspended impurities
- C02F1/5209—Regulation methods for flocculation or precipitation
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/52—Treatment of water, waste water, or sewage by flocculation or precipitation of suspended impurities
- C02F1/5281—Installations for water purification using chemical agents
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B03—SEPARATION OF SOLID MATERIALS USING LIQUIDS OR USING PNEUMATIC TABLES OR JIGS; MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03D—FLOTATION; DIFFERENTIAL SEDIMENTATION
- B03D1/00—Flotation
- B03D1/14—Flotation machines
- B03D1/1412—Flotation machines with baffles, e.g. at the wall for redirecting settling solids
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B03—SEPARATION OF SOLID MATERIALS USING LIQUIDS OR USING PNEUMATIC TABLES OR JIGS; MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03D—FLOTATION; DIFFERENTIAL SEDIMENTATION
- B03D1/00—Flotation
- B03D1/14—Flotation machines
- B03D1/24—Pneumatic
- B03D1/242—Nozzles for injecting gas into the flotation tank
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B03—SEPARATION OF SOLID MATERIALS USING LIQUIDS OR USING PNEUMATIC TABLES OR JIGS; MAGNETIC OR ELECTROSTATIC SEPARATION OF SOLID MATERIALS FROM SOLID MATERIALS OR FLUIDS; SEPARATION BY HIGH-VOLTAGE ELECTRIC FIELDS
- B03D—FLOTATION; DIFFERENTIAL SEDIMENTATION
- B03D2203/00—Specified materials treated by the flotation agents; Specified applications
- B03D2203/008—Water purification, e.g. for process water recycling
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/44—Treatment of water, waste water, or sewage by dialysis, osmosis or reverse osmosis
-
- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/52—Treatment of water, waste water, or sewage by flocculation or precipitation of suspended impurities
- C02F1/5236—Treatment of water, waste water, or sewage by flocculation or precipitation of suspended impurities using inorganic agents
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/52—Treatment of water, waste water, or sewage by flocculation or precipitation of suspended impurities
- C02F1/54—Treatment of water, waste water, or sewage by flocculation or precipitation of suspended impurities using organic material
- C02F1/56—Macromolecular compounds
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2103/00—Nature of the water, waste water, sewage or sludge to be treated
- C02F2103/08—Seawater, e.g. for desalination
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2201/00—Apparatus for treatment of water, waste water or sewage
- C02F2201/002—Construction details of the apparatus
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2209/00—Controlling or monitoring parameters in water treatment
- C02F2209/06—Controlling or monitoring parameters in water treatment pH
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2301/00—General aspects of water treatment
- C02F2301/04—Flow arrangements
- C02F2301/043—Treatment of partial or bypass streams
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2301/00—General aspects of water treatment
- C02F2301/04—Flow arrangements
- C02F2301/046—Recirculation with an external loop
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2303/00—Specific treatment goals
- C02F2303/26—Reducing the size of particles, liquid droplets or bubbles, e.g. by crushing, grinding, spraying, creation of microbubbles or nanobubbles
Definitions
- the present disclosure relates to a multibubble injection type DAF (Dissolved Air Flotation) water treatment apparatus, and more particularly, to a multibubble injection type DAF (Dissolved Air Flotation) water treatment apparatus which supplies fine bubbles injected through injection of saturated water to a lower area of a separation zone as well as a lower area of a contact zone of a flotation basin, thereby improving removal efficiency of floes.
- DAF Dissolved Air Flotation
- a water treatment apparatus is an apparatus which produces fresh water using seawater to utilize the fresh water as water for living, eating or industrial use or properly treat raw water to purify waste water.
- a water treatment apparatus includes a device for removing foreign matters mixed in raw water.
- the dissolved air flotation is a widely applied technology for various water treatment and sewage treatment processes or a pretreatment process for seawater desalination facilities.
- the dissolved air flotation is a technology of putting a coagulant, an aid coagulant, a pH regulator and so on in feed water to be treated in order to coagulate suspended particles, which is difficult to be removed through precipitation, such as alga and organic compounds, contained in feed water, injecting micro bubbles into the coagulated matters to combine the micro bubbles with the suspended particles, and floating and removing the suspended particles.
- a DAF water treatment apparatus includes a mixing and coagulation basin (or a mixing basin), a flocculation basin and a flotation basin, and the flotation basin is divided into a contact zone and a separation zone.
- Floc means a large mass that fine particles, such as suspended solids, organic matters and inorganic matters, contained in the raw water are flocculated by the coagulant, and generally means a collected thing formed by flocculation of particles of 0.1 ⁇ m or more. Flocs of a small size or density which cannot be removed through filtration or precipitation are floated onto the surface of water to be removed using the dissolved air flotation water treatment apparatus.
- the flocs generated and grown up in the mixing and coagulation basin 1 flow into a flotation basin located at a rear end.
- the flocs flown into a contact zone 2 are floated to the surface of water by colliding and combining with fine bubbles injected from a lower part of the contact zone 2, and then, are removed through a scum removal device in a separation zone 3.
- the related DAF water treatment apparatus separates some of treated water which is an end product by a pipe and supplies compressed air of 4 to 7 bars to saturate the treated water. So, a rapid drop of pressure occurs, and then, micro bubbles are supplied to the contact zone 2 through a nozzle 4 mounted at the lower part of the contact zone 2.
- the related dissolved air flotation system has a disadvantage in that quality of the treated water is deteriorated and it has influences on the following processes.
- an environment-friendly wastewater treatment equipment that cuts down the cost of equipment furthermore for being equipped with all sorts facility including the separate feedwater tank etc. It prevents the waste of the water resources it recycles the purge water ejected through the water storage tank to the feedwater re-supplied to the floating detachment tank and water storage tank and it can improve the separation with the purification of the generate and the waste water and solid material the microbubble in which ozone is included in the floating detachment tank and water storage tank it enhances the cohesive effect of the waste water it arranges multiple flocculation basins.
- This environment-friendly wastewater treatment equipment consists of the multiple flocculation basins, a floating detachment tank for separating the solid material, a sludge remover for ejecting the solid material to the floating detachment tank outside, a water storage tank with ozone treatment while it sojourns the processing water ejected from the floating detachment tank and for ejecting to the outside, the intake pump, the pressure tank the uniformly distributes ozone on the purge water transferred from the intake pump and for accelerating the autolysis of ozone, and a fine bubble generator for generating the microbubble to the floating detachment tank and water storage tank.
- the intake pump inhales the purge water which becomes with purification process while it passes the water storage tank and mixes the ozone transferred through the ozonizer with the purge water.
- the microbubbles are generated at the low part of water tubs using two distinct microbubble injection nozzles.
- the present disclosure has been made to solve the above-mentioned problems and it is an object of the present disclosure to provide a multibubble injection type DAF (Dissolved Air Flotation) water treatment apparatus which can control some of micro bubbles to be supplied not only to a contact zone but also to a separation zone so that remaining flocs which are not in contact and are not combined with the micro bubbles at the contact zone and a bubble layer (an upper part of the separation zone) additionally come into contact with the micro bubbles in a lower part (below of the bubble layer) of the separation zone, thereby remarkably improving removal of the floes.
- DAF Dissolved Air Flotation
- a multibubble injection type DAF (Dissolved Air Flotation) water treatment apparatus for removing suspended particles contained in feed water to be treated
- the multibubble injection type water treatment apparatus including: a mixing and coagulation basin for stirring a coagulant and feed water when the coagulant is injected into the feed water so as to form and grow up flocs through coagulation of suspended particles; a flotation basin for injecting micro bubbles and making the micro bubbles get in contact with the flocs contained in the feed water to form a combined body, raising the combined body to the surface of water and removing the combined body; and micro bubble distributing means having one or more nozzles (wherein only the embodiment with one nozzle falls under the present invention) for receiving saturated water, in which air is saturated, through a saturated water supply pipe in order to spray the saturated water into the flotation basin, wherein the flotation basin is divided into a contact zone, in which the injected micro bubble
- the nozzles may respectively be mounted at a lower part of the contact zone and a lower part of the separation zone, the saturated water is supplied to the nozzles through the saturated water supply pipe, and the micro bubbles are injected to the contact zone and the separation zone.
- the partition has a wing part which upwardly extends toward the contact zone at a predetermined distance spaced apart from the bottom end of the partition and an outer end of the wing part is located above a spray hole of the nozzle, so that some of the micro bubbles injected through the nozzle are guided to the separation zone by the wing part.
- a plurality of first communication holes are formed from the portion that the wing part is formed to the bottom end of the partition in order to communicate with the separation zone, and the degree of opening of the first communication holes is controlled by first stoppers.
- one or more first turbulence partitions are formed protrudingly from the wing part or the partition, on which the first communication holes are formed, in a micro bubble stay zone surrounded by the wing part and the partition having the first communication holes.
- a two-way nozzle which has spray holes formed in two ways to spray the saturated water to the contact zone and the separation zone is mounted on the partition in order to inject micro bubbles to the contact zone and the separation zone.
- the micro bubble distributing means includes a container disposed on the bottom of the flotation basin, the upper face of the container becomes the bottom face of the flotation basin and is partitioned into a face exposed toward the contact zone and a face exposed toward the separation zone, and the container has a plurality of second communication holes formed on the upper face thereof, so that the micro bubbles injected from the nozzle mounted at the lower part of the container are supplied to the contact zone and the separation zone through the second communication holes.
- the degree of opening of the second communication holes formed on the upper face of the container is controlled by second stoppers, and one or more second turbulence partitions are formed protrudingly from an inner wall of the container, inside the micro bubble stay zone of the container.
- a mixing and coagulation basin that includes: a first mixing and coagulation part which is filled with first turbulence derivatives to generate high speed turbulence to first form flocs in the raw water; and a second mixing and coagulation part which is filled with second turbulence derivatives to generate turbulence slower than the turbulence of the first mixing and coagulation part so as to grow up the flocs in the raw water passing the first mixing and coagulation part.
- the mixing and coagulation basin further includes a porous separation membrane for partitioning the first mixing and coagulation part from the second mixing and coagulation part in order to maintain different turbulence intensities between the first mixing and coagulation part and the second mixing and coagulation part.
- first turbulence derivatives are mesh-type materials which are stacked manifold or a plurality of fiber aggregates which get tangled together
- second turbulence derivatives are a plurality of pall ring type materials.
- the multibubble injection type DAF water treatment apparatus further includes a micro bubble forming part for forming saturated water using some of the feed water at the upstream side of the mixing and coagulation basin and supplying the saturated water to the nozzle through the saturated water supply pipe.
- the micro bubble forming part includes: an intake pipe for supplying air to the separated feed water; a mixing pump for forcedly transferring the supplied air and the feed water; and a saturator for saturating the supplied air in the transferred feed water.
- the micro bubble forming part further includes a supplement injection part for supplying a supplement to make the formed micro bubbles have positive charges, and the supplement injection part is disposed on an upstream side pipe (a) of the intake pipe, a pipe (b) between the intake pipe and the mixing pump or a pipe (c) between the mixing pump and the saturator.
- micro bubble forming part further includes a strainer for removing solids through pretreatment of the separated feed water.
- the multibubble injection type DAF water treatment apparatus can supply some of micro bubbles not only to the contact zone but also to the separation zone so that the flocs which are not combined with the micro bubbles at the contact zone and the bubble layer can come into contact with the micro bubbles in the separation zone below the bubble layer, thereby remarkably improving removal of the flocs.
- the present disclosure provides a DAF (Dissolved Air Flotation) water treatment apparatus (A) which includes a mixing and coagulation basin 10, a flotation basin 20 divided into a contact zone 21 and a separation zone 22, and micro bubble distributing means 30 having a nozzle 31 for supplying micro bubbles into the flotation basin 20 in order to remove suspended particles contained in feed water to be treated.
- DAF Dissolved Air Flotation
- the mixing and coagulation basin 10 in the water treatment apparatus (A) is a unit for stirring a coagulant and feed water when the coagulant is injected into the feed water so as to form and grow up floes through coagulation of suspended particles
- the flotation basin 20 is a unit for making the flocs grown in the feed water get in contact with the micro bubbles to form a combined body, raising the combined body to the surface of water and removing the combined body.
- the main technical feature of the water treatment apparatus is to induce the micro bubbles to be injected not only to the contact zone 21 but also to the separation zone 22 through the micro bubble distributing means 30.
- the water treatment apparatus can guarantee quality of the treated water stably even though forming and growing conditions of the flocs are changed according to various conditions, such as stirring intensity, seawater temperature or residence time, because the water treatment apparatus can effectively float and remove the floes which are not removed in the contact zone 21 or the bubble layer which is an upper part of the separation zone 22.
- the micro bubble distributing means 30 of the present invention includes: saturated water supplying means 32 (such as a supply pipe) for supplying saturated water, in which air is saturated, from the outside; and a nozzle 31 which receives the saturated water through the saturated water supplying means to spray the saturated water into the flotation basin 20.
- saturated water supplying means 32 such as a supply pipe
- nozzle 31 which receives the saturated water through the saturated water supplying means to spray the saturated water into the flotation basin 20.
- the micro bubble distributing means 30 can supply micro bubbles to the contact zone 21 and the separation zone 22 in various acceptable forms.
- exemplary embodiments of the various forms will be described in detail.
- the water treatment apparatus includes separate type nozzles 31a and 31b which are respectively mounted at the lower part of the contact zone 21 and the lower part of the separation zone 22 in order to spray the saturated water supplied through the saturated water suppling means 32, and it is illustrated in FIG. 2 .
- the nozzles 31 are respectively installed to the contact zone 21 and the separation zone 22, installation costs are increased, but it has several advantages in that it is easy to compensate problems of the conventional DAF apparatus which has the nozzle mounted only to the contact zone 22 and in that it is convenient to control operation of the nozzles 31 individually.
- the water treatment apparatus includes a wing part 23a which protrudes toward the contact zone 21 at a predetermined height of a partition 23 upwardly extending from the bottom of the flotation basin 20 partitioning the contact zone 21 and the separation zone 22.
- An outer end portion of the wing part 23a is located above a spray hole of the nozzle 31 mounted at the lower part of the contact zone 21, so that some of the micro bubbles sprayed from the nozzle 31 collide against the wing part 23a and are guided to the separation zone 22. It is illustrated in FIG. 3 .
- the water treatment apparatus can supply micro bubbles to the contact zone 21 and the separation zone 22 using the single nozzle 31, and induce the micro bubbles of a proper amount toward the separation zone 22 because the outer end portion of the wing part 23a is properly mounted to be located above the spray hole of the nozzle 31 or is disposed to be controlled during operation.
- first communication holes 23b are formed from the portion that the wing part 23a extends to the bottom end of the partition 23 in order to communicate with the separation zone 22, so that the micro bubbles guided through the wing part 23a can flow into the separation zone 22.
- first stoppers 23c which can control the degree of opening of the first communication holes 23b may be disposed on the partition 23 having the first communication holes 23b.
- a panel having holes corresponding with the first communication holes 23b is combined side by side with the partition 23 having the first communication holes 23b in such a way as to move parallel with the partition 23, so that the degree of opening of the first communication holes 23b can be controlled when the congruence degree between the holes formed in the panel and the first communication holes 23b is controlled.
- one or more first turbulence partitions 23d may protrude from the partition 23 or the wing part 23a.
- the water treatment apparatus includes a two-way nozzle 31' which has spray holes formed in two directions and is mounted at a predetermined height of the partition 23 upwardly extending from the bottom of the flotation basin 20 which partitions the contact zone 21 and the separation zone 22 in order to spray the saturated water to the contact zone 21 and the separation zone 22, so that micro bubbles can be supplied to the contact zone 21 and the separation zone 22, and it is illustrated in FIG. 4 .
- the water treatment apparatus according to the second exemplary embodiment can supply micro bubbles also to the separation zone 22 through the single nozzle like the water treatment apparatus according to the first exemplary embodiment, and can control the amount or quality of micro bubbles supplied to the contact zone 21 or the separation zone 22 more easily by directly controlling the sprayed state through the two-way nozzle 31' like the water treatment apparatus according to Fig.2 .
- the water treatment apparatus has means for controlling the height of the nozzle 31 mounted on the partition 23 in order to control positions of the micro bubbles supplied from the nozzle 31 during operation.
- the water treatment apparatus includes porous container type micro bubble distributing means 30 disposed on the lower part of the partition 23 upwardly extending from the bottom of the flotation basin 20 which partitions the contact zone 21 and the separation zone 22, and it is illustrated in FIG. 5 .
- the micro bubble distributing means 30 may include a container 33 disposed on the bottom of the flotation basin 20.
- the upper face of the container 33 may become the bottom face of the flotation basin 20 in which the partition 23 is mounted, and the upper face of the container 33 may be partitioned into a face exposed toward the contact zone 21 and a face exposed toward the separation zone 22.
- the container 33 has a plurality of second communication holes 33a formed in the upper face thereof, so that the micro bubbles injected from the nozzle 31 mounted at the lower part of the container 33 can be supplied to the contact zone 21 and the separation zone 22 through the second communication holes 33a.
- the container 33 may further include a second stopper 33b disposed on the upper face of the container 33, which has the second communication holes 33a, to control the degree of opening of the second communication holes 33a.
- a panel having holes corresponding with the second communication holes 33a is combined side by side with the upper face of the container 33 having the second communication holes 33a in such a way as to move parallel with the upper face of the container 33, so that the degree of opening of the second communication holes 33a can be controlled when the congruence degree between the holes formed in the panel and the second communication holes 33a is controlled.
- one or more second turbulence partitions 33c may protrude from an inner wall(s) of the container 33.
- the water treatment apparatus can control the amount of the micro bubbles supplied to the contact zone and the separation zone.
- Nonpowered mixing and coagulation basin including first and second mixing and coagulation parts with different turbulence intensities
- the water treatment may include a nonpowered mixing and coagulation basin 10 having first and second mixing and coagulation parts with different turbulence intensities.
- FIG. 6 is a mimetic diagram showing a nonpowered mixing and coagulation basin 100.
- the nonpowered mixing and coagulation basin for coagulating a coagulant injected into raw water and particles contained in the raw water to form and grow up flocs includes: a first mixing and coagulation part 110 which is filled with first turbulence derivatives 111 to generate high speed turbulence to first form floes in the raw water; and a second mixing and coagulation part 120 which is filled with second turbulence derivatives 121 to generate turbulence slower than the turbulence of the first mixing and coagulation part 110 so as to second grow the floes in the raw water passing the first mixing and coagulation part 110, so that the particles contained in the raw water are coagulated into a predetermined size by coming into contact with the coagulant while circulating inside the mixing and coagulation basin by turbulent flows without any stirring power.
- the nonpowered mixing and coagulation basin 100 further includes a porous separation membrane 130 for partitioning the first mixing and coagulation part 110 from the second mixing and coagulation part 120 in order to maintain different turbulence intensities between the first mixing and coagulation part 110 and the second mixing and coagulation part 120.
- the first mixing and coagulation part 110 is a watertight space to form floes while the particles contained in the raw water are circulated by turbulent flows generated when the raw water flowing into the first mixing and coagulation part 110 passes the first turbulent derivatives 111, and has an inflow pipe disposed at the upper side thereof to make the raw water flow in.
- the raw water flowing through the inflow pipe in the form of a straight flow forms a high-speed turbulence while passing the first turbulent derivatives 111 charged in the first mixing and coagulation part 110, and the particles contained in the raw water and the coagulant come into contact with each other by the turbulence so as to form flocs.
- the first turbulent derivatives 111 are mesh-type materials which are stacked manifold or a plurality of fiber aggregates which get tangled together, and preferably, may be stacked asymmetrically not to vertically coincide pores with each other between the mesh-type material having pores and the neighboring mesh-type material.
- the filter media according to the present disclosure can generate turbulences by gravity while the raw water passes the mesh-type materials and control the speed of turbulences generated according to sizes of the pores.
- the second mixing and coagulation part is a space for growing the floes contained in the raw water due to a slow-speed turbulence generated when the treated water passing the first mixing and coagulation part 110 passes the second turbulent derivatives 121, and includes a treated water discharge pipe mounted at the lower side for discharging the treated water in which the flocs are contained.
- the second turbulent derivatives 121 has the form that is filled with a plurality of pall ring type materials, preferably, may be formed by a plurality of separate stages filled with the plural pall ring type materials which are stacked in multilayers.
- the second mixing and coagulation part 120 of the nonpowered mixing and coagulation basin 100 can regulate the number of the stages of the separated type, which are respectively filled with the pall ring type materials, according to conditions of the raw water. It is preferable that the stages be disposed to get smaller in packing density of the pall ring type materials toward the downstream side. The reason is that it can make the flocs bigger because turbulence speed gets slower when packing density gets lower.
- the separation membrane 120 is to partition the first mixing and coagulation part 110 from the second mixing and coagulation part 120 in order to maintain different turbulence speeds between the first mixing and coagulation part 110 and the second mixing and coagulation part 120.
- the first mixing and coagulation part generates rapid-speed turbulence and the second mixing and coagulation part 120 generates slow-speed turbulence to form and grow up the floes by coagulating the particles contained in the raw water.
- the first mixing and coagulation part 110 is disposed above the second mixing and coagulation part 120, so that the raw water put in the first mixing and coagulation part generates rapid-speed turbulence while passing the first turbulent derivatives 111 to first form floes. After that, the raw water goes through the pores of the separation membrane 130 by gravity, and grows up the flocs formed in the first mixing and coagulation part due to slow-speed turbulence formed while passing a plurality of the stages filled with the second turbulent derivatives 121 of the second mixing and coagulation part.
- the dissolved air flotation apparatus which includes the mixing and coagulation basin for coagulating foreign matters by injecting the coagulant into the raw water and the flotation basin for floating and removing the flocs by injecting micro bubbles into the raw water may further include the nonpowered mixing and coagulation basin which includes: the first mixing and coagulation part 110 filled with first turbulence derivatives 111 to generate high speed turbulence to form flocs in the raw water; and the second mixing and coagulation part 120 filled with second turbulence derivatives 121 to generate turbulence slower than the turbulence of the first mixing and coagulation part 110 so as to grow the floes in the raw water passing the first mixing and coagulation part 110.
- the nonpowered mixing and coagulation basin 100 is disposed at the front end of the flotation basin 20.
- the dissolved air flotation apparatus may further include: an additional coagulation basin (not shown) which has an agitator mounted between the mixing and coagulation basin 100 and the flotation basin 20; and a bypass channel (not shown) to directly transfer the flocs from the first mixing and coagulation part 110 to the additional coagulation basin.
- the first mixing and coagulation part 110 is disposed above the second mixing and coagulation part 130, so that the raw water put in the first mixing and coagulation part passes the second mixing and coagulation part by gravity.
- the dissolved air flotation apparatus having the nonpowered mixing and coagulation basin can regulate the number of the plural stages of the second mixing and coagulation part 120 or control the flow through the bypass channel and the agitator according to the conditions of the raw water requiring water treatment.
- the agitator included in the additional coagulation basin is operated, and then, a first flow to direct the flotation basin 20 through the second mixing and coagulation part 120 and the additional coagulation basin from the first mixing and coagulation part 110 and a second flow to direct the flotation basin 20 through the bypass channel and the additional coagulation basin from the first mixing and coagulation part 110 are selectively controlled.
- a third flow to direct the flotation basin 20 through the second mixing and coagulation part 120 from the first mixing and coagulation part 110 and a fourth flow to direct the flotation basin 20 through the bypass channel from the first mixing and coagulation part 110 are selectively controlled.
- the flow of the treated water can be selectively controlled into the first flow to the fourth flow according to conditions of the raw water, temporary problems and situations, so that operating costs can be reduced.
- the DAF water treatment apparatus separate some of the treated water which is discharged finally, generates saturated water by injecting compressed air, and then, sprays the saturated water to the separation zone through the nozzle.
- the water treatment apparatus generates saturated water not using treated water but using some of feed water of the upstream side and supplies micro bubbles to the separation zone, and it is illustrated in FIG. 7 .
- a flow rate of a recycle flow separated from treated water is about 10% to 20% of feed water and an amount of formed micro bubbles is increased as the flow rate of the recycle flow is increased, performance of the apparatus can be improved.
- a flow velocity in the separation zone 22 is increased and the combined body between the floes and the micro bubbles does not float and is discharged to the following process.
- the water treatment apparatus includes a micro bubble forming part 40 for forming micro bubbles by inducing and saturating air into water separated not from the finally treated water but from the initial feed water so as to enhance efficiency of the apparatus.
- the micro bubble forming part 50 includes an intake pipe 51 for supplying air to the separated upstream side feed water; a mixing pump 52 for forcedly transferring the supplied air and the feed water; and a saturator 53 for saturating the supplied air in the transferred feed water.
- a conventional saturator is a device for dissolving compressed air in treated water induced through a circulating pump.
- the conventional saturator has a water gathering space formed at a lower part thereof and an area above the water gathering space is filled with a filler, so that saturated water in which compressed air is dissolved is gathered in the water gathering space while the compressed air and water flow into the upper end of the saturator and pass through the filler.
- Such a conventional saturator has a problem of biofouling because microorganisms are formed on the filler disposed in the saturator when air is supplied not to treated water but to feed water, and the problem is more critical in case of a saturator having a high and big pressure container in order to enhance efficiency.
- the present disclosure proposes a new saturator 53 with an improved inner structure which can use not treated water but feed water because solving the problem that saturation efficiency is reduced due to biofouling, does not use an air compressor, and can be operated at pressure of about 3 bar which is lower than pressure of the conventional saturator, 4 bar to 7 bar, so as to reduce operation costs.
- the saturator 53 (not shown in the drawing) includes: a housing; a partition which extends in a vertical direction from an inner wall of one side of the housing but does not reach an inner wall of the other side so as to form a flow channel at the inner wall of the other side; and a plurality of fine pores formed in the partition.
- the saturator which adopts the inner partition structure induces a turbulent flow of the feed water flowing therein and air contained in the feed water, so that the air can be effectively saturated in the feed water even at relatively small operation pressure (about 3 bar) and it can prevent the problem of biofouling by generation of turbulence and can be operated without any air compressor.
- micro bubble ionizers of various types, such as electrolyzers for electrolysis may be adopted.
- a supplement injection part 54 for supplying a supplement for ionization of micro bubbles may be added.
- the supplement there are ferric salt coagulants, aluminum-based coagulants, and so on.
- the supplement injection parts 54 may be disposed at various positions in order to supply the supplement to the feed water inside the pipe, preferably, disposed on an upstream side pipe of the intake pipe 51, on a pipe between the intake pipe 51 and the mixing pump 52 or on a pipe between the mixing pump 52 and the saturator 53.
- the supplement In a case that the supplement is supplied to the separated initial feed water, the supplement can be naturally and uniformly mixed during an air supply process through the intake pipe 51 and during a forcedly transferring process through the mixing pump 52.
- the supplement is supplied on the pipe between the intake pipe 51 and the mixing pump 52 or on the pipe between the mixing pump 52 and the saturator 53, it is easy to control operations through control of the flow rate and pressure of the feed water.
- the water treatment apparatus may further include a strainer 55 for removing solids through pretreatment of the separated feed water of the upstream side.
- the strainer means devices for preventing foreign matters from being induced by removing solids contained in a fluid.
- the strainer 55 is disposed at the upstream side from which the feed water is separated for first preprocessing the feed water in which lots of solids exist compared with treated water, in order to minimize bad influences on each process of the micro bubble forming processes at the rear end.
- the water treatment apparatus (A) according to the embodiment of the present disclosure was far better in removal efficiency of contaminants or flocs in feed water than the conventional water treatment apparatus because inducing immature fine flocs or immature floes, which would grow up too late at the rear end, to additionally come into contact with the micro bubbles.
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Claims (11)
- Appareil de traitement d'eau (A) par flottation à l'air dissout, DAF, de type injection de multi-bulles pour retirer des particules en suspension contenues dans de l'eau d'alimentation à traiter, l'appareil de traitement d'eau (A) par DAF comprenant :un bassin de mélange et de coagulation (10) configuré pour remuer un coagulant et de l'eau d'alimentation lorsque le coagulant est injecté dans l'eau d'alimentation de façon à former et faire grossir des flocs par coagulation de particules en suspension ;un bassin de flottation (20) configuré pour injecter des micro-bulles et faire que les micro-bulles soient en contact avec les flocs contenus dans l'eau d'alimentation pour former un corps combiné, élever le corps combiné à la surface de l'eau et retirer le corps combiné ; et un moyen de distribution de micro-bulles (30) ayant un injecteur (31) configuré pour recevoir de l'eau saturée dans laquelle l'air est saturé, par un tuyau d'alimentation d'eau saturée (32) afin de pulvériser l'eau saturée dans le bassin de flottation (20),dans lequel le bassin de flottation (20) est divisé en une zone de contact (21) dans laquelle les micro-bulles injectées et les flocs viennent en contact les uns avec les autres, et une zone de séparation (22) qui retire le corps combiné s'élevant à la surface de l'eau et décharge l'eau traitée vers une extrémité arrière, par une cloison (23) s'étendant vers le haut à partir d'une surface de fond du bassin de flottation (20),dans lequel les micro-bulles sont injectées à travers le moyen de distribution de micro-bulles (30) de façon à ce que les micro-bulles soient alimentées vers à la fois une partie inférieure de la zone de contact (21) et une partie inférieure de la zone de séparation (22), etdans lequel l'injecteur (31) est disposé sur la partie inférieure de la zone de contact (21), la cloison (23) a une partie d'ailette (23a) qui fait saillie en direction de la zone de contact (21) à une hauteur prédéterminée de la cloison (23), la cloison (23) s'étendant vers le haut depuis le fond du bassin de flottation cloisonnant ainsi la zone de contact (21) et une zone de séparation (22), et une extrémité extérieure de la partie d'ailette (23a) étant située au-dessous d'un trou de pulvérisation de l'injecteur (31) monté sur la partie inférieure de la zone de contact (21) de sorte qu'une partie des micro-bulles injectées à travers l'injecteur (31) vienne heurter la partie d'ailettes (23a) et soit guidée vers la zone de séparation (22) par la partie d'ailette (23a), dans lequel la communication avec la zone de séparation (22) est formée par une pluralité de premiers trous de communication formés sur la partie de la cloison (23) d'où la partie d'ailette (23a) est formée vers la partie de fond de la cloison.
- Appareil de traitement d'eau par DAF de type injection de multi-bulles selon la revendication 1, dans lequel un degré d'ouverture des premiers trous de communication (23b) est commandé par des premières butées (23c).
- Appareil de traitement d'eau par DAF de type injection de multi-bulles selon la revendication 2, dans lequel un panneau avec des trous correspondant aux premiers trous de communication (23b) est combiné côte à côte avec la cloison (23) ayant les premiers trous de communication (23b) de façon à se déplacer parallèlement avec la cloison (23) de façon à ce que le degré d'ouverture des premiers trous de communication (23b) puisse être commandé lorsque le degré de congruence entre les trous formés dans le panneau et les premiers trous de communication (23b) est commandé.
- Appareil de traitement d'eau par DAF de type injection de multi-bulles selon la revendication 1, dans lequel une ou plusieurs premières cloisons de turbulence (23d) sont formées en saillie à partir de la partie d'ailette (23a) ou de la cloison (23) sur laquelle les premiers trous de communication (23b) sont formés, dans une zone de séjour des micro-bulles (S) entourée par la partie d'ailette (23a) et la cloison (23) ayant les premiers trous de communication (23b).
- Appareil de traitement d'eau (A) par flottation à l'air dissout, DAF, de type injection de multi-bulles pour retirer des particules en suspension contenues dans de l'eau d'alimentation à traiter, l'appareil de traitement d'eau (A) par DAF comprenant :un bassin de mélange et de coagulation (10) configuré pour remuer un coagulant et de l'eau d'alimentation lorsque le coagulant est injecté dans l'eau d'alimentation de façon à former et faire grossir des flocs par coagulation de particules en suspension ;un bassin de flottation (20) configuré pour injecter des micro-bulles et faire que les micro-bulles soient en contact avec les flocs contenus dans l'eau d'alimentation pour former un corps combiné, élever le corps combiné à la surface de l'eau et retirer le corps combiné ; et un moyen de distribution de micro-bulles (30) ayant un injecteur (31) configuré pour recevoir de l'eau saturée dans laquelle l'air est saturé, par un tuyau d'alimentation d'eau saturée (32) afin de pulvériser l'eau saturée dans le bassin de flottation (20),dans lequel le bassin de flottation (20) est divisé en une zone de contact (21) dans laquelle les micro-bulles injectées et les flocs viennent en contact les uns avec les autres, et une zone de séparation (22) qui retire le corps combiné s'élevant à la surface de l'eau et décharge l'eau traitée vers une extrémité arrière, par une cloison (23) s'étendant vers le haut à partir d'une surface de fond du bassin de flottation (20),dans lequel les micro-bulles sont injectées à travers le moyen de distribution de micro-bulles (30) de façon à ce que les micro-bulles soient alimentées vers à la fois une partie inférieure de la zone de contact (21) et une partie inférieure de la zone de séparation (22), etdans lequel un injecteur deux voies (31) qui présente des trous de pulvérisation est formé dans deux directions, les trous de pulvérisation sont configurés pour pulvériser l'eau saturée vers la zone de contact (21) et la zone de séparation (22), l'injecteur deux voies (31) est monté à une hauteur prédéterminée sur la cloison (23) séparant la zone de contact et la zone de séparation et s'étendant vers le haut à partir du bassin de flottation (20) afin d'injecter des micro-bulles vers la zone de contact (21) et la zone de séparation (22) ;dans lequel l'appareil de traitement d'eau par DAF de type injection de multi-bulles comprend en outre un moyen pour commander la hauteur de montage de l'injecteur deux voies (31) monté sur la cloison (23) afin de commander des positions des micro-bulles alimentées depuis l'injecteur (31) durant le fonctionnement.
- Appareil de traitement d'eau par DAF de type injection de multi-bulles selon la revendication 5, dans lequel l'eau saturée est alimentée vers l'injecteur deux voies (31) par le biais du moyen d'alimentation d'eau saturée (32) et les micro-bulles sont injectées vers la zone de contact (21) et la zone de séparation (22).
- Appareil de traitement d'eau (A) par flottation à l'air dissout, DAF, de type injection de multi-bulles pour retirer des particules en suspension contenues dans de l'eau d'alimentation à traiter, l'appareil de traitement d'eau (A) par DAF comprenant :un bassin de mélange et de coagulation (10) configuré pour remuer un coagulant et de l'eau d'alimentation lorsque le coagulant est injecté dans l'eau d'alimentation de façon à former et faire grossir des flocs par coagulation de particules en suspension ;un bassin de flottation (20) configuré pour injecter des micro-bulles et faire que les micro-bulles soient en contact avec les flocs contenus dans l'eau d'alimentation pour former un corps combiné, élever le corps combiné à la surface de l'eau et retirer le corps combiné ; et un moyen de distribution de micro-bulles (30) ayant un injecteur (31) configuré pour recevoir de l'eau saturée dans laquelle l'air est saturé, par un tuyau d'alimentation d'eau saturée (32) afin de pulvériser l'eau saturée dans le bassin de flottation (20),dans lequel le bassin de flottation (20) est divisé en une zone de contact (21) dans laquelle les micro-bulles injectées et les flocs viennent en contact les uns avec les autres, et une zone de séparation (22) qui retire le corps combiné s'élevant à la surface de l'eau et décharge l'eau traitée vers une extrémité arrière, par une cloison (23) s'étendant vers le haut à partir d'une surface de fond du bassin de flottation (20),dans lequel les micro-bulles sont injectées à travers le moyen de distribution de micro-bulles (30) de façon à ce que les micro-bulles soient alimentées vers à la fois une partie inférieure de la zone de contact (21) et une partie inférieure de la zone de séparation (22), etdans lequel le moyen de distribution des micro-bulles (30) inclut un récipient (33) disposé sur le fond du bassin de flottation (20),dans lequel une face supérieure du récipient (33) forme au moins une partie de la face de fond du bassin de flottation (20) et est cloisonnée en une face exposée vers la zone de contact (21) et une face exposée vers la zone de séparation (22), etdans lequel le récipient (33) a une pluralité de seconds trous de communication (33a) formés sur la face supérieure de celui-ci, de façon à ce que les micro-bulles injectées de l'injecteur (31) monté sur la partie inférieure du récipient (33) soient alimentées vers la zone de contact (21) et la zone de séparation (22) par les seconds trous de communication (33a).
- Appareil de traitement d'eau par DAF de type injection de multi-bulles selon la revendication 7, dans lequel un degré d'ouverture des seconds trous de communication (33a) formés sur la face supérieure du récipient (33) est commandé par des secondes butées (33b), dans lequel les secondes butées (33b) sont disposées sur la face supérieure du récipient (33).
- Appareil de traitement d'eau par DAF de type injection de multi-bulles selon la revendication 8, dans lequel un panneau avec des trous correspondant aux seconds trous de communication (33a) est combiné côte à côte avec la face supérieure du récipient (33) ayant les seconds trous de communication (33a) de façon à se déplacer parallèlement avec la face supérieure du récipient (33) de façon à ce que le degré d'ouverture des seconds trous de communication (33a) puisse être commandé lorsque le degré de congruence entre les trous formés dans le panneau et les seconds trous de communication (33a) est commandé.
- Appareil de traitement d'eau par DAF de type injection de multi-bulles selon l'une des revendications 7 à 9, dans lequel une ou plusieurs secondes cloisons de turbulence (33c) sont formées en saillie à partir d'une paroi intérieure du récipient (33), dans la zone de séjour des micro-bulles (S) du récipient (33).
- Appareil de traitement d'eau par DAF de type injection de multi-bulles selon l'une des revendications 7 à 10, dans lequel la totalité du récipient (33) auquel l'injecteur (31) est combiné est configurée pour se déplacer latéralement parallèlement à la face de fond du bassin de flottation (20) sur la partie inférieure du bassin de flottation (20) de façon à ce que le degré d'exposition de la face supérieure du récipient (33) en direction de la zone de contact (21) ou de la zone de séparation (22) puisse être commandé.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP18182100.0A EP3406569B1 (fr) | 2015-05-04 | 2016-02-11 | Appareil de traitement d'eau par flottation du type à injection, dans lequel de l'air dissous est injecté |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| KR1020150062717A KR101690510B1 (ko) | 2015-05-04 | 2015-05-04 | 다중 기포 주입 방식의 용존공기부상 수처리 장치 |
Related Child Applications (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP18182100.0A Division EP3406569B1 (fr) | 2015-05-04 | 2016-02-11 | Appareil de traitement d'eau par flottation du type à injection, dans lequel de l'air dissous est injecté |
| EP18182100.0A Division-Into EP3406569B1 (fr) | 2015-05-04 | 2016-02-11 | Appareil de traitement d'eau par flottation du type à injection, dans lequel de l'air dissous est injecté |
Publications (2)
| Publication Number | Publication Date |
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| EP3090806A1 EP3090806A1 (fr) | 2016-11-09 |
| EP3090806B1 true EP3090806B1 (fr) | 2019-07-17 |
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| EP18182100.0A Active EP3406569B1 (fr) | 2015-05-04 | 2016-02-11 | Appareil de traitement d'eau par flottation du type à injection, dans lequel de l'air dissous est injecté |
| EP16155269.0A Active EP3090806B1 (fr) | 2015-05-04 | 2016-02-11 | Appareil de traitement d'eau par flotation à l'air dissous utilisant des injecteurs |
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| EP18182100.0A Active EP3406569B1 (fr) | 2015-05-04 | 2016-02-11 | Appareil de traitement d'eau par flottation du type à injection, dans lequel de l'air dissous est injecté |
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| EP (2) | EP3406569B1 (fr) |
| KR (1) | KR101690510B1 (fr) |
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| KR101875653B1 (ko) | 2016-10-10 | 2018-07-06 | 현대자동차 주식회사 | 연료전지 배출 수소 농도 저감장치 |
| KR102131735B1 (ko) * | 2017-04-26 | 2020-07-08 | 두산중공업 주식회사 | 하수 처리용 컴팩트형 포기조 및 이를 포함하는 하수 처리 시스템 |
| KR101979767B1 (ko) | 2017-05-31 | 2019-05-17 | 한국건설기술연구원 | 침전과 부상분리공정 일체형 고효율 침전부상 시스템 및 그의 구동 방법 |
| CN107601728B (zh) * | 2017-11-14 | 2023-12-26 | 河南清波环境工程有限公司 | 带自动排气防翻腾功能的气浮凝絮污水处理系统 |
| US10245546B1 (en) | 2018-08-22 | 2019-04-02 | H & H Inventions & Enterprises, Inc. | Exhaust gas purification method and system |
| CN110066008B (zh) * | 2019-04-28 | 2021-07-30 | 淮北矿业股份有限公司 | 一种用于污水处理厂的生化池压风系统 |
| KR102211487B1 (ko) * | 2019-05-27 | 2021-02-03 | 서울대학교산학협력단 | 차동 기포 크기를 이용한 하이 레이트 daf |
| KR102669652B1 (ko) | 2019-09-19 | 2024-05-28 | 주식회사 엘지화학 | 에스터화 생성물의 중화/수분리 장치 및 에스터화 생성물의 중화/수분리 방법 |
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2016
- 2016-02-11 EP EP18182100.0A patent/EP3406569B1/fr active Active
- 2016-02-11 EP EP16155269.0A patent/EP3090806B1/fr active Active
- 2016-02-12 US US15/042,487 patent/US10093554B2/en active Active
Patent Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| KR20060114493A (ko) * | 2005-05-02 | 2006-11-07 | 유연근 | 오폐수 처리장치 |
Also Published As
| Publication number | Publication date |
|---|---|
| EP3406569B1 (fr) | 2020-05-27 |
| EP3406569A2 (fr) | 2018-11-28 |
| EP3090806A1 (fr) | 2016-11-09 |
| EP3406569A3 (fr) | 2019-02-27 |
| KR101690510B1 (ko) | 2016-12-28 |
| US10093554B2 (en) | 2018-10-09 |
| US20160326016A1 (en) | 2016-11-10 |
| KR20160130654A (ko) | 2016-11-14 |
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